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I am trying to build the search for a Django site I am building, and in the search I am searching in 3 different models. And to get pagination on the search result list I would like to use a generic object_list view to display the results. But to do that i have to merge 3 querysets into one.

How can i do that? Ive tried this:

result_list = []            
page_list = Page.objects.filter(Q(title__icontains=cleaned_search_term) | Q(body__icontains=cleaned_search_term))
article_list = Article.objects.filter(Q(title__icontains=cleaned_search_term) | Q(body__icontains=cleaned_search_term) | Q(tags__icontains=cleaned_search_term))
post_list = Post.objects.filter(Q(title__icontains=cleaned_search_term) | Q(body__icontains=cleaned_search_term) | Q(tags__icontains=cleaned_search_term))

for x in page_list:
    result_list.append(x)
for x in article_list:
    result_list.append(x)
for x in post_list:
    result_list.append(x)

return object_list(request, queryset=result_list, template_object_name='result',
                   paginate_by=10, extra_context={'search_term': search_term},
                   template_name="search/result_list.html")

But this doesnt work I get an error when i try to use that list in the generic view. The list is missing the clone attribute.

Anybody know how i can merge the three lists, page_list, article_list and post_list?

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9 Answers 9

up vote 413 down vote accepted

Concatenating the querysets into a list is the simplest approach. If the database will be hit for all querysets anyway (e.g. because the result needs to be sorted), this won't add further cost.

from itertools import chain
result_list = list(chain(page_list, article_list, post_list))

Using itertools.chain is faster than looping each list and appending elements one by one, since itertools is implemented in C. It also consumes less memory than converting each queryset into a list before concatenating.

Now it's possible to sort the resulting list e.g. by date (as requested in hasen j's comment to another answer). The sorted() function conveniently accepts a generator and returns a list:

result_list = sorted(
    chain(page_list, article_list, post_list),
    key=lambda instance: instance.date_created)

If you're using Python 2.4 or later, you can use attrgetter instead of a lambda. I remember reading about it being faster, but I didn't see a noticeable speed difference for a million item list.

from operator import attrgetter
result_list = sorted(
    chain(page_list, article_list, post_list),
    key=attrgetter('date_created'))
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33  
Drive by voting: finding this post has proved massively useful to me today. Thanks! –  Keryn Knight Feb 15 '10 at 19:31
3  
If merging querysets from the same table to perform an OR query, and have duplicated rows you can eliminate them with the groupby function: from itertools import groupby unique_results = [rows.next() for (key, rows) in groupby(result_list, key=lambda obj: obj.id)] –  Josh Russo Sep 18 '11 at 22:21
1  
Ok, so nm about the groupby function in this context. With the the Q function you should be able to perform any OR query you need: https://docs.djangoproject.com/en/1.3/topics/db/queries/#complex-lookups-with-q‌​-objects –  Josh Russo Sep 18 '11 at 22:41
    
is it possible to use list.extend instead of chain? –  apelliciari Aug 13 '12 at 10:04
    
What happens if there are duplicates? Will it remove them or will I need to add some extra code to do so? –  Josh Davies Dec 4 '12 at 11:40

Try this:

matches = pages | articles | posts

Retains all the functions of the querysets which is nice if you want to order_by or similar.

Oops, please note that this doesn't work on querysets from two different models...

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4  
I didn't know about the bitwise or operator on querysets, super useful comment. Thanks. –  llimllib Jun 11 '11 at 21:16
1  
Brilliant, thanks! Can't believe I couldn't find this after spending about the last hour reading through the docs. Ohdear. –  Jonathan Hartley Feb 15 '12 at 17:28
1  
This is amazing thank you so much! –  nu everest Dec 19 '12 at 23:15
2  
What an extremely useful feature, I'm so surprised it isn't clearly documented! –  dhackner Mar 1 '13 at 21:03
2  
Very cool, very simple, doesn't require anything extra. Awesome! –  Codygman Jun 12 '13 at 19:37

You can use the QuerySetChain class below. When using it with Django's paginator, it should only hit the database with COUNT(*) queries for all querysets and SELECT() queries only for those querysets whose records are displayed on the current page.

Note that you need to specify template_name= if using a QuerySetChain with generic views, even if the chained querysets all use the same model.

from itertools import islice, chain

class QuerySetChain(object):
    """
    Chains multiple subquerysets (possibly of different models) and behaves as
    one queryset.  Supports minimal methods needed for use with
    django.core.paginator.
    """

    def __init__(self, *subquerysets):
        self.querysets = subquerysets

    def count(self):
        """
        Performs a .count() for all subquerysets and returns the number of
        records as an integer.
        """
        return sum(qs.count() for qs in self.querysets)

    def _clone(self):
        "Returns a clone of this queryset chain"
        return self.__class__(*self.querysets)

    def _all(self):
        "Iterates records in all subquerysets"
        return chain(*self.querysets)

    def __getitem__(self, ndx):
        """
        Retrieves an item or slice from the chained set of results from all
        subquerysets.
        """
        if type(ndx) is slice:
            return list(islice(self._all(), ndx.start, ndx.stop, ndx.step or 1))
        else:
            return islice(self._all(), ndx, ndx+1).next()

In your example, the usage would be:

pages = Page.objects.filter(Q(title__icontains=cleaned_search_term) |
                            Q(body__icontains=cleaned_search_term))
articles = Article.objects.filter(Q(title__icontains=cleaned_search_term) |
                                  Q(body__icontains=cleaned_search_term) |
                                  Q(tags__icontains=cleaned_search_term))
posts = Post.objects.filter(Q(title__icontains=cleaned_search_term) |
                            Q(body__icontains=cleaned_search_term) | 
                            Q(tags__icontains=cleaned_search_term))
matches = QuerySetChain(pages, articles, posts)

Then use matches with the paginator like you used result_list in your example.

The itertools module was introduced in Python 2.3, so it should be available in all Python versions Django runs on.

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4  
Nice approach, but one problem I see here is that the query sets are appended "head-to-tail". What if each queryset is ordered by date and one needs the combined-set to also be ordered by date? –  hasenj Jan 11 '09 at 10:02
    
This certaintly looks promising, great, I'll have to try that, but i dont have time today. I'll get back to you if it solves my problem. Great work. –  espenhogbakk Jan 11 '09 at 11:04
    
Ok, I had to try today, but it didnt work, first it complained that it didnt have to _clone attribute so i added that one, just copied the _all and that worked, but it seems that the paginator has some problem with this queryset. I get this paginator error: "len() of unsized object" –  espenhogbakk Jan 11 '09 at 12:48
1  
@Espen Python library: pdb, logging. External: IPython, ipdb, django-logging, django-debug-toolbar, django-command-extensions, werkzeug. Use print statements in code or use the logging module. Above all, learn to introspect in the shell. Google for blog posts about debugging Django. Glad to help! –  akaihola Jan 14 '09 at 21:19
1  
@patrick see djangosnippets.org/snippets/1103 and djangosnippets.org/snippets/1933 – epecially the latter is a very comprehensive solution –  akaihola Apr 10 '11 at 11:16

The big downside of your current approach is its inefficiency with large search result sets, as you have to pull down the entire result set from the database each time, even though you only intend to display one page of results.

In order to only pull down the objects you actually need from the database, you have to use pagination on a QuerySet, not a list. If you do this, Django actually slices the QuerySet before the query is executed, so the SQL query will use OFFSET and LIMIT to only get the records you will actually display. But you can't do this unless you can cram your search into a single query somehow.

Given that all three of your models have title and body fields, why not use model inheritance? Just have all three models inherit from a common ancestor that has title and body, and perform the search as a single query on the ancestor model.

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Yeah, I see now that it isnt effecient at all. And I see that the model inheritance may be the way to go, but then I'll have to rewrite my models, and i was hoping to dont have to do that. But it should work. –  espenhogbakk Jan 11 '09 at 1:07

Looks like t_rybik has created a comprehensive solution at http://www.djangosnippets.org/snippets/1933/

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here's an idea... just pull down one full page of results from each of the three and then throw out the 20 least useful ones... this eliminates the large querysets and that way you only sacrifice a little performance instead of a lot

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For searching it's better to use dedicated solutions like Haystack - it's very flexible.

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In case you want to chain a lot of querysets, try this:

from itertools import chain
result = list(chain(*docs))

where: docs is a list of querysets

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DATE_FIELD_MAPPING = {
    Model1: 'date',
    Model2: 'pubdate',
}

def my_key_func(obj):
    return getattr(obj, DATE_FIELD_MAPPING[type(obj)])

And then sorted(chain(Model1.objects.all(), Model2.objects.all()), key=my_key_func)

Quoted from https://groups.google.com/forum/#!topic/django-users/6wUNuJa4jVw. See Alex Gaynor

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